2016, Número 4
<< Anterior
Vet Mex 2016; 3 (4)
Evaluation of the aroA mutant of Corynebacterium pseudotuberculosis in cellular and murine models
Ibarra ZC, Arellano RB, Hernández CR, Palomares REG, Diaz AE
Idioma: Español/Inglés
Referencias bibliográficas: 26
Paginas: 1-16
Archivo PDF: 293.21 Kb.
RESUMEN
Sin resumen.
REFERENCIAS (EN ESTE ARTÍCULO)
Songer JG, Beckenbach K, Marshall MM, Olson GB, Kelley L. Biochemical and genetic characterization of Corynebacterium pseudotuberculosis. Am J Vet Res. 1988;49(2):223-6. PMID:2831763.
Moraes P, Seyffert N, Silva W, Castro T, Silva R, Lima D, et al. Characterization of the Opp peptide transporter of Corynebacterium pseudotuberculosis and its role in virulence and pathogenicity. Biomed Res Int. 2014;2014:489782. doi: 10.1155/2014/489782.
Aleman M, Spier SJ, Wilson WD, Doherr M. Corynebacterium pseudotuberculosis infection in horses: 538 cases (1982-1993). J Am Vet Med Assoc. 1996;209(4):804-9. PMID:8756884.
Lopes Bastos B, Dias Portela RW, Alves Dorella F, Ribeiro D, Seyffert N, de Paula Castro TL, et al. Corynebacterium pseudotuberculosis: Immunological Responses in Animal Models and Zoonotic Potential. J Clin Cell Immunol. 2012; S4. Available from: http://dx.doi.org/10.4172/2155-9899.S4-005. doi: 10.4172/2155-9899.S4-005.
Moura-Costa L, Bahia R, Carminati R, Vale VL, Paule B, Portela R, et al. Evaluation of the humoral and cellular immune response to different antigens of Corynebacterium pseudotuberculosis in Caninde goats and their potential protection against caseous lymphadenitis. Vet Immunol Immunopathol. 2008;126(1- 2):131-41. doi: 10.1016/j.vetimm.2008.06.013.
Sebkova A, Karasova D, Crhanova M, Budinska E, Rychlik I. aro mutations in Salmonella enterica cause defects in cell wall and outer membrane integrity. J Bacteriol. 2008;190(9):3155-60. doi:10.1128/JB.00053-08.
Parish T, Stoker N. The common aromatic amino acid biosynthesis pathway is essential in Mycobacterium tuberculosis. Microbiology. 2002;148(Pt 10):3069- 77. doi: 10.1099/00221287-148-10-3069.
Trebichavsky I, Splichalova A, Rychlik I, Hojna H, Muneta Y, Mori Y, et al. Attenuated aroA Salmonella enterica serovar Typhimurium does not induce inflamma tory response and early protection of gnotobiotic pigs against parental virulent LT2 strain. Vaccine. 2006;24(20):4285-9. doi: 10.1016/j.vaccine.2006.02.054.
Silva J, Droppa-Almeida D, Borsuk S, Azevedo V, Portela R, Miyoshi A, et al. Corynebacterium pseudotuberculosis cp09 mutant and cp40 recombinant protein partially protect mice against caseous lymphadenitis. BMC Vet Res. 2014;10:965. doi: 10.1186/s12917-014-0304-6.
Alam J, Singh B, Hansda D, Singh V, Verma J. Evaluation of aroA deletion mutant of Salmonella enterica subspecies enterica serovar Abortusequi for its vaccine candidate potential. Indian J Exp Biol. 2009;47(11):871-9.
Simmons C, Dunstan S, Tachedjian M, Krywult J, Hodgson A, Strugnell R. Vaccine potential of attenuated mutants of Corynebacterium pseudotuberculosis in sheep. Infect Immun. 1998;66(2):474-9. PMCID: PMC107930.
Vingataramin L, Frost E. A single protocol for extraction of gDNA from bacteria and yeast. Biotechniques. 2015;58(3):120-5. doi: 10.2144/000114263.
Sambrook J, Fritsch E, Maniatis T. Molecular cloning. Laboratory manual. 2nd ed. New York, EUA: Cold Spring Harbor Laboratory Press; 1989. 1626 pp.
Dorella F, Estevam E, Cardoso P, Savassi B, Oliveira S, Azevedo V, et al. An improved protocol for electrotransformation of Corynebacterium pseudotuberculosis. Vet Microbiol. 2006;114(3-4):298-303. doi: 10.1016/j.vetmic.2005.12.010.
Stefanska I, Gierynska M, Rzewuska M, Binek M. Survival of Corynebacterium pseudotuberculosis within macrophages and induction of phagocytes death. Pol J Vet Sci. 2010;13(1):143-9.
Stanford K, Brogden K, McClelland L, Kozub G, Audibert F. The incidence of caseous lymphadenitis in Alberta sheep and assessment of impact by vaccination with commercial and experimental vaccines. Can J Vet Res. 1998;62(1):38-43. PMCID: PMC1189440.
Treviño-Villarreal J, Vera-Cabrera L, Valero-Guillen P, Salinas-Carmona M. Nocardia brasiliensis cell wall lipids modulate macrophage and dendritic responses that favor development of experimental actinomycetoma in BALB/c mice. Infect Immun. 2012;80(10):3587-601. doi: 10.1128/IAI.00446-12.
Figueiredo Castro Nassar A, Miyashiro S, Gregori F, Piatti RM, Daniel GT, Gregory L. Standardization of an enzyme-linked immunosorbent assay (ELISA) for detection of antibodies anti-Corynebacterium pseudotuberculosis in sheep. Small Rumin Res. 2014;116(2-3):229–32. doi: 10.1016/j.smallrumres.2013.10.016.
Ribeiro D, Rocha Fde S, Leite K, Soares Sde C, Silva A, Portela R, et al. An iron-acquisition-deficient mutant of Corynebacterium pseudotuberculosis efficiently protects mice against challenge. Vet Res. 2014;45:28. doi: 10.1186/1297-9716-45-28.
Kaps M, Lamberson W. Bioestatistcs for animal science. An introductory text. 2nd ed: CABI International 2009. 520 p.
Hodgson A, Carter K, Tachedjian M, Krywult J, Corner L, McColl M, et al. Efficacy of an ovine caseous lymphadenitis vaccine formulated using a genetically inactive form of the Corynebacterium pseudotuberculosis phospholipase D. Vaccine. 1999;17(7-8):802-8. doi: 10.1016/S0264-410X(98)00264-3.
Rodrigues Pinho JM, Alves Dorella F, da Silva Coelho K, Toscano Fonseca C, Caldas Cardoso F, Meyer R, et al. Immunization with recombinant Corynebacterium pseudotuberculosis heat–shock protein (Hsp)-60 is able to induce an immune response in mice, but fails to confer protection against infection. Open Vet Sci J. 2009;3:22-7. doi: 10.2174/1874318800903010022.
Baird G, Fontaine M. Corynebacterium pseudotuberculosis and its role in ovine caseous lymphadenitis. J Comp Pathol. 2007;137(4):179-210. doi: 10.1016/j. jcpa.2007.07.002.
D’Afonseca V, Moraes P, Dorella F, Pacheco L, Meyer R, Portela R, et al. A description of genes of Corynebacterium pseudotuberculosis useful in diagnostics and vaccine applications. Gen Mol Res. 2008;7(1):252-60. PMID: 18551390.
McKean S, Davies J, Moore R. Expression of phospholipase D, the major virulence factor of Corynebacterium pseudotuberculosis, is regulated by multiple environmental factors and plays a role in macrophage death. Microbiology. 2007;153(Pt 7):2203-11. doi 10.1099/mic.0.2007/005926-0.
Dong C. Diversification of T-helper-cell lineages: finding the family root of IL-17-producing cells. Nat Rev Immunol. 2006;6(4):329-33. doi: 10.1038/nri1807.